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Cyclic solid-state quantum battery: thermodynamic characterization and quantum hardware simulation

Academic Article
Publication Date:
2025
abstract:
We introduce a cyclic quantum battery QB model, based on an interacting bipartite system, weakly coupled to a thermal bath. The working cycle of the battery consists of four strokes: system thermalization, disconnection of subsystems, ergotropy extraction, and reconnection. The thermal bath acts as a charger in the thermalization stroke, while ergotropy extraction is possible because the ensuing thermal state is no longer passive after the disconnection stroke. Focusing on the case of two interacting qubits, we show that phase coherence, in the presence of non-trivial correlations between the qubits, can be exploited to reach working regimes with efficiency higher than 50% while providing finite ergotropy. Our protocol is illustrated through a simple and feasible circuit model of a cyclic superconducting QB. Furthermore, we simulate the considered cycle on superconducting IBM quantum machines. The good agreement between the theoretical and simulated results strongly suggests that our scheme for cyclic QBs can be successfully realized in superconducting quantum hardware.
Iris type:
Articolo su Rivista
Keywords:
quantum battery; quantum simulation; quantum thermodynamics; superconducting circuits
List of contributors:
Razzoli, Luca; Gemme, Giulia; Khomchenko, Ilia; Sassetti, Maura; Ouerdane, Henni; Ferraro, Dario; Benenti, Giuliano
Authors of the University:
BENENTI GIULIANO
Handle:
https://irinsubria.uninsubria.it/handle/11383/2188251
Full Text:
https://irinsubria.uninsubria.it//retrieve/handle/11383/2188251/356713/Razzoli_2025_Quantum_Sci._Technol._10_015064.pdf
Published in:
QUANTUM SCIENCE AND TECHNOLOGY
Journal
Project:
Solid State Quantum Batteries: Characterization and Optimization
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URL

https://iopscience.iop.org/article/10.1088/2058-9565/ad9ed4
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